繁体中文

MIT researchers have demonstrated a novel chip based resin 3D printer

108
2024-06-17 15:22:09
查看翻譯

Researchers from the Massachusetts Institute of Technology and the University of Texas at Austin showcased the first chip based resin 3D printer. Their concept verification tool consists of a millimeter sized photon chip that emits a programmable beam of light into resin holes, which solidify into a solid structure when exposed to light.

The prototype processor does not have mobile components, but uses a series of small optical antennas to guide the beam of light. The beam is projected upwards into the liquid resin, which is carefully designed to quickly cure when exposed to the visible wavelength of the beam.
By integrating silicon photonics and photochemistry, interdisciplinary research teams can demonstrate a chip that can guide a beam of light to 3D print any two-dimensional design, including the letters M-I-T. The shape can be fully constructed within seconds.

Silicon Photonics and Special Resins
The Notaros group, which specializes in silicon photonics, has created an integrated optical phased array device that uses a microscale antenna on a chip to guide a beam of light. They can change the optical signals on both sides of the antenna array to control the beam of light. These systems are crucial for LiDAR sensors, which use infrared light to measure the surrounding environment. Recently, the group has shifted its focus to devices that generate and guide visible light for augmented reality applications.

Around the same time as they began brainstorming, the Page team at the University of Texas at Austin developed for the first time a specialized resin that could rapidly cure using visible light wavelengths. This is the missing part that makes chip based 3D printers a reality.
Corsetti added, "Here, we manufacture this chip based 3D printer by using visible light curing resin and visible light emitting chips, meeting between standard photochemistry and silicon photonics. You integrate the two technologies into a completely new idea.".

Chip based resin 3D printer
Their prototype consists of a photonic chip with a 160 nanometer optical antenna array. The thickness of a piece of paper is about 100000 nanometers. The entire chip is suitable for a quarter of the United States.

When driven by an off chip laser, the antenna guides the controllable visible beam into the holes of the photocured resin. The chip is located below a transparent glass slide, similar to the glass slide used in a microscope, which has a small depression that can capture resin. Researchers use electrical pulses to guide laser beams in a non mechanical manner, making the resin harden at any point of impact.

The Page team at the University of Texas at Austin works closely with the Notaros team at the Massachusetts Institute of Technology to fine tune chemical combinations and concentrations to achieve a formula with a long shelf life and solidification.
Finally, scientists have demonstrated that their prototype can 3D print any two-dimensional shape in just a few seconds.

expectation
In the long run, researchers envision a system where a photon chip is located at the bottom of a resin well and creates a 3D hologram of visible light, thereby solidifying a complete object in one step.
This type of portable 3D printer can have a wide range of applications, including allowing doctors to build customized medical device components and engineers to create rapid prototypes in the workplace.

This study received partial support from the National Science Foundation, the Defense Advanced Research Projects Agency, the Robert Welch Foundation, the MIT Rolf G. Rocher Endowment Scholarship, and the MIT Frederick and Barbara Croning Scholarship.

Source: Laser Net

相關推薦
  • Nanchang University has made progress in intelligent photoacoustic tomography imaging

    Photoacoustic tomography (PAT) is a novel hybrid medical imaging technique that enables precise imaging of biological tissue structures at different spatial scales. It has been widely used in various fields, including brain imaging, cancer detection, and cardiovascular disease diagnosis. However, due to limitations in data acquisition conditions, photoacoustic tomography systems typically can only...

    2024-08-13
    查看翻譯
  • Holographic Laser Processing: Rapid Manufacturing and Image Reconstruction of Artificial Biomimetic Compound Eyes

    IntroductionIn recent years, inspired by insect compound eyes, artificial biomimetic compound eyes have shown great advantages in overcoming the limitations of existing imaging devices such as large, bulky, and heavy, and improving the performance of medical endoscopy, panoramic imaging, micro navigation, and robot vision due to their unique optical imaging solutions such as small size, distortion...

    2023-10-25
    查看翻譯
  • Launching the world's strongest laser at a cost of 320 million euros

    Beijing, April 1st (Reporter Liu Xia) - The world's most powerful laser has been activated recently. On March 31st, the Physicist Organization Network reported that the system can enable laser pulses to reach a peak of 10 terawatts (1 terawatt=100 terawatts=1015 watts) within 1 femtosecond (1000 trillions of a second), which is expected to promote revolutionary progress in multiple fi...

    2024-04-03
    查看翻譯
  • EOS and AMCM will open a new UK Additive Manufacturing Excellence Center

    The University of Wolverhampton (UK), along with global 3D printing leaders EOS and AMCM, will collaborate to establish a new Centre of Excellence (AM) for Additive Manufacturing in the UK. This partnership will provide cutting-edge technology from EOS and AMCM, and focus on developing advanced materials and processes for high demand applications in industries such as aerospace, automotive, aerosp...

    2024-04-15
    查看翻譯
  • Photon automation expands through new laser application laboratories

    Photon Automation, Inc., headquartered in Greenfield, Indiana, has been committed to providing automated laser technology solutions since 2000. The company is pleased to announce the opening of its state-of-the-art laser application laboratory in Farmington Hills, Michigan. This 7400 square foot facility will be led by renowned laser physicist Dr. Najah George, who has over 35 years of extensive e...

    2023-09-01
    查看翻譯